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首页> 外文期刊>International Journal of Geographical Information Science >Deriving ground surface digital elevation models from LiDAR data with geostatistics
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Deriving ground surface digital elevation models from LiDAR data with geostatistics

机译:利用地统计从LiDAR数据推导出地面数字高程模型

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摘要

This paper focuses on two common problems encountered when using Light Detection And Ranging (LiDAR) data to derive digital elevation models (DEMs). Firstly, LiDAR measurements are obtained in an irregular configuration and on a point, rather than a pixel, basis. There is usually a need to interpolate from these point data to a regular grid so it is necessary to identify the approaches that make best use of the sample data to derive the most accurate DEM possible. Secondly, raw LiDAR data contain information on above-surface features such as vegetation and buildings. It is often the desire to (digitally) remove these features and predict the surface elevations beneath them, thereby obtaining a DEM that does not contain any above-surface features. This paper explores the use of geostatistical approaches for prediction in this situation. The approaches used are inverse distance weighting (IDW), ordinary kriging (OK) and kriging with a trend model (KT). It is concluded that, for the case studies presented, OK offers greater accuracy of prediction than IDW while KT demonstrates benefits over OK. The absolute differences are not large, but to make the most of the high quality LiDAR data KT seems the most appropriate technique in this case.
机译:本文重点介绍在使用光检测和测距(LiDAR)数据导出数字高程模型(DEM)时遇到的两个常见问题。首先,LiDAR测量是在不规则配置下以点而不是像素为基础获得的。通常需要将这些点数据内插到规则网格中,因此有必要确定最能充分利用样本数据来得出最准确的DEM的方法。其次,原始LiDAR数据包含有关地表特征(例如植被和建筑物)的信息。通常需要(数字化)去除这些特征并预测它们之下的表面高度,从而获得不包含任何表面上特征的DEM。本文探讨了在这种情况下使用地统计方法进行预测的方法。使用的方法是反距离权重(IDW),普通克里金法(OK)和带有趋势模型的克里金法(KT)。结论是,对于提出的案例研究,OK提供的预测准确性比IDW高,而KT证明优于OK。绝对差异并不大,但是在这种情况下,充分利用高质量LiDAR数据KT似乎是最合适的技术。

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